The method for controlling signal transmission includes: determining the first reference variable according to the number of transition points from downlink to uplink in a wireless frame of the system and the system frame number (S502); determining the second reference variable according to the number of transition points from downlink to uplink in a wireless frame and the time slot number (S504); determining the third reference variable according to the sub-frame offset of the signal (S506); and determining signal transmission times according to the first reference variable, the second reference variable and the third reference variable, so as to control the signal transmission (S508).
|
2. A device for controlling signal transmission, comprising:
an inputting module, being used to input the number of transition points from downlink to uplink in a wireless frame of a system, nSP, a system frame number, nf, a time slot number, ns, a sub-frame offset of a signal, Toffset, and a maximum sub-frame offset of the signal, Toffset
a first processing module, being used to determine a first reference variable, n1, according to n1=2NSPnf;
a second processing module, being used to determine a second reference variable, n2, according to
a third processing module, being used to determine a third reference variable n3, according to
and
a control module, being used to determine a transmission times of the signal, nSRS 1, with the following formula:
nSRS=n1+n2+n3 , wherein nS, nf, ns and Toffset are non-negative integers.
1. A method for controlling signal transmission, comprising:
determining a first reference variable, n1, according to the number of transition points from downlink to uplink in a wireless frame of a system, nSP, and a system frame number, nf;
determining a second reference variable, n2, according to the number of transition points from downlink to uplink in said wireless frame, nSP, and a time slot number, ns;
determining a third reference variable, n3, according to a sub-frame offset of a signal, Toffset, and a maximum sub-frame offset of said signal, Toffset
determining transmission times of said signal, nSRS, according to the first reference variable, n1, the second reference variable, n2, and the third reference variable, n3, using the following formula:
nSRS=n1+n2+n3 wherein n1=2Nspnf,
and nSP, nf, ns and Toffset are non-negative integers.
|
The present invention relates to the field of communications, particularly to a method and device for controlling signal transmission.
The frame structure under TDD (Time Division Duplex) mode in the LTE (Long Term Evolution) system is also called “Frame Structure Type 2”.
Table 1 shows the configuration of the uplink/downlink signals of each sub-frame in the frame structure as shown in
The resource allocation in the LTE system takes a Physical Resource Block (PRB) or a Resource Block (RB) as a unit, wherein each PRB occupies 12 sub-carriers (or called Resource Element (RE), each sub-carrier is 15 kHz) in the frequency domain and occupies a time slot in the time domain, namely, it occupies SC-FDMA (Single Carrier-Frequency Division Multiple Access) symbols of 7 normal cyclic prefixes (normal CP) or 6 extended cyclic prefixes (extended CP) in the time domain. If the total number of RBs to which the uplink system bandwidth corresponds in the frequency domain is NRBUL, then indexes of the RB will be 0, 1, . . . , and NRBUL−1 and indexes of the RE will be 0, 1, . . . , and NRBUL·NSCRB−1, wherein NSCRB is the number of sub-carriers to which one RB corresponds in the frequency domain. Taking normal CP for example, the structure of the PRB is shown in
TABLE 1
Configu-
Switch-point
Sub-frame number
ration
period
0
1
2
3
4
5
6
7
8
9
0
5
ms
D
S
U
U
U
D
S
U
U
U
1
5
ms
D
S
U
U
D
D
S
U
U
D
2
5
ms
D
S
U
D
D
D
S
U
D
D
3
10
ms
D
S
U
U
U
D
D
D
D
D
4
10
ms
D
S
U
U
D
D
D
D
D
D
5
10
ms
D
S
U
D
D
D
D
D
D
D
6
5
ms
D
S
U
U
U
D
S
U
U
D
The bandwidth of Sounding Reference Signal (SRS) is configured by adopting a tree structure, namely, each kind of SRS bandwidth configuration corresponds to a tree structure, the tree structure is shown in
TABLE 2
(6 ≦ NRBUL ≦ 40)
SRS-
SRS-
SRS-
SRS-
Bandwidth
Bandwidth
Bandwidth
Bandwidth
SRS bandwidth
b = 0
b = 1
b = 2
b = 3
configuration
mSRS, b
Nb
mSRS, b
Nb
mSRS, b
Nb
mSRS, b
Nb
0
36
1
12
3
4
3
4
1
1
32
1
16
2
8
2
4
2
2
24
1
4
6
4
1
4
1
3
20
1
4
5
4
1
4
1
4
16
1
4
4
4
1
4
1
5
12
1
4
3
4
1
4
1
6
8
1
4
2
4
1
4
1
7
4
1
4
1
4
1
4
1
TABLE 3
(40 < NRBUL ≦ 60)
SRS-
SRS-
SRS-
SRS-
Bandwidth
Bandwidth
Bandwidth
Bandwidth
SRS bandwidth
b = 0
b = 1
b = 2
b = 3
configuration
mSRS, b
Nb
mSRS, b
Nb
mSRS, b
Nb
mSRS, b
Nb
0
48
1
24
2
12
2
4
3
1
48
1
16
3
8
2
4
2
2
40
1
20
2
4
5
4
1
3
36
1
12
3
4
3
4
1
4
32
1
16
2
8
2
4
2
5
24
1
4
6
4
1
4
1
6
20
1
4
5
4
1
4
1
7
16
1
4
4
4
1
4
1
TABLE 4
(60 < NRBUL ≦ 80)
SRS-
SRS-
SRS-
SRS-
Bandwidth
Bandwidth
Bandwidth
Bandwidth
SRS bandwidth
b = 0
b = 1
b = 2
b = 3
configuration
mSRS, b
Nb
mSRS, b
Nb
mSRS, b
Nb
mSRS, b
Nb
0
72
1
24
3
12
2
4
3
1
64
1
32
2
16
2
4
4
2
60
1
20
3
4
5
4
1
3
48
1
24
2
12
2
4
3
4
48
1
16
3
8
2
4
2
5
40
1
20
2
4
5
4
1
6
36
1
12
3
4
3
4
1
7
32
1
16
2
8
2
4
2
TABLE 5
(80 < NRBUL ≦ 110)
SRS-
SRS-
SRS-
SRS-
Bandwidth
Bandwidth
Bandwidth
Bandwidth
SRS bandwidth
b = 0
b = 1
b = 2
b = 3
configuration
mSRS, b
Nb
mSRS, b
Nb
mSRS, b
Nb
mSRS, b
Nb
0
96
1
48
2
24
2
4
6
1
96
1
32
3
16
2
4
4
2
80
1
40
2
20
2
4
5
3
72
1
24
3
12
2
4
3
4
64
1
32
2
16
2
4
4
5
60
1
20
3
4
5
4
1
6
48
1
24
2
12
2
4
3
7
48
1
16
3
8
2
4
2
With respect to the above-showed SRS bandwidth configuration, when the SRS-bandwidth allocated to a UE is smaller than the maximum SRS-bandwidth, frequency hopping should be adopted so that all frequency bands within the range of the maximum SRS-bandwidth have opportunities to transmit SRS. As frequency hopping arithmetic is based on SRS transmission times, therefore, SRS transmission times require continuous increment. Further, in order to make the frequency hopping process controllable, then requires the UEs with the same SIRS period have same SRS transmission times at the same time.
With respect to the TDD system, the SRS signal transmission position of the UE is informed by a base station through UE specific signaling. UE specific signaling refers to that this signaling is sent to a specific UE only. The base station informs UE specific SRS period and sub-frame offset configuration index to UE, each configuration index corresponds to a period and sub-frame offset, the condition to which this configuration corresponds is shown in Table 6.
TABLE 6
Configuration Index, ISRS
SRS Period (ms)
SRS Sub-frame Offset
0
2
0, 1
1
2
0, 2
2
2
1, 2
3
2
0, 3
4
2
1, 3
5
2
0, 4
6
2
1, 4
7
2
2, 3
8
2
2, 4
9
2
3, 4
10-14
5
ISRS-10
15-24
10
ISRS-15
25-44
20
ISRS-25
45-84
40
ISRS-45
85-164
80
ISRS-85
165-324
160
ISRS-165
325-644
320
ISRS-325
645-1023
reserved
reserved
In Table 6, the meaning of SRS Sub-frame Offset may include the following two circumstances.
Circumstance 1, the SIRS period is 2 ms:
(1) Sub-frame offset Noffset is 2, 3 and 4, representing the first, second and third uplink sub-frames in a half-frame respectively;
(2) When there are two SC-FDMA symbols in the UpPTS, sub-frame offset 0 stands for the first SC-FDMA symbol in the UpPTS, and sub-frame offset 1 stands for the second SC-FDMA symbol in the UpPTS; when there is one SC-FDMA symbol in the UpPTS, sub-frame offset 0 or 1 stands for the only SC-FDMA symbol in the UpPTS.
Circumstance 2, the SRS period is great r than 2 ms, and one SRS period TSRS contains
half-frames:
(1) When sub-frame offset Noffset satisfies (Noffset mod 5)≦1,
If there are two symbols in the UpPTS, then Noffset mod 5=0, 1 stand for the first and second SC-FDMA symbol in the UpPTS within the
half-frame respectively;
If there are two symbols in the UpPTS, then Noffset mod 5=0 or 1 stands for the only SC-FDMA symbol in the UpPTS within the
half-frame;
half-frame of SRS in a SRS period.
Currently, SRS transmission times are calculated according to Formula nSRS=└(nf×10+└ns/2┘)/TSRS┘. When the SRS period is greater than 2 ms, the SRS transmission times calculated with this formula may meet requirements, but when SRS period is 2 ms, the SRS transmission times that calculated with this formula are discontinuous. For example, for configuration 0 in Table 6, when a wireless frame has two transition points from downlink to uplink, the SRS have the same SRS transmission times on the two symbols of UpPTS
there is no continuous increment, not to meet the requirements.
Currently, when the SRS period is 2 ms, no effective solution is available to solve the problem of that the calculation result of SRS transmission times is discontinuous yet.
The present invention is put forward by taking the problem into consideration, which is that the calculation result of SRS transmission times is discontinuous when the SRS period is 2 ms. Therefore, the main purpose of the present invention is to provide a modified solution for controlling signal transmission, to solve above-mentioned problem.
In order to realize the above-mentioned purpose, a method for controlling signal transmission is provided according to one aspect of the present invention.
The method for controlling signal transmission according to the present invention comprises: determining a first reference variable according to the number of transition points from downlink to uplink in a wireless frame of a system and a system frame number; determining a second reference variable according to the number of transition points from downlink to uplink in a wireless frame and a time slot number; determining a third reference variable according to the sub-frame offset of the signal; determining signal transmission times according to the first reference variable, the second reference variable and the third reference variable, so as to control the signal transmission.
Preferably, the operation of determining signal transmission times according to the first reference variable, specifically, the second reference variable and the third reference variable may comprise: treating the sum of the first reference variable, the second reference variable and the third reference variable as the transmission times.
Preferably, the first reference variable n1 may be determined with the following formula: n1=2NSPnf, wherein NSP is the number of transition points from downlink to uplink in a wireless frame, and nf is the system frame number.
Preferably, the second reference variable n2 may be determined with the following formula:
wherein NSP is the number of transition points from downlink to uplink in a wireless frame, and ns is the time slot number.
Preferably, the third reference variable n3 may be determined with the following formula:
wherein Toffset is the sub-frame offset of the signal, and Toffset
Preferably, the transmission times of the signal nSRS may be determined with the following formula:
wherein n1=2NSPnf is the first reference variable,
is the second reference variable,
is the third reference variable, NSP is the number of transition points from downlink to uplink in a wireless frame, nf is the system frame number, ns is the time slot number, Toffset is the sub-frame offset of the signal and Toffset
Wherein the above-mentioned └ ┘ means rounding down. NSP, nf, ns and Toffset all are non-negative integers.
According to another aspect of the present invention, a device for controlling signal transmission is provided.
The device for controlling signal transmission according to the present invention comprises: an inputting module, which is used to input the number of transition points from downlink to uplink in a wireless frame of a system, a system frame number, a time slot number and a sub-frame offset of the signal; a first processing module, which is used to determine the first reference variable according to the number of transition points from downlink to uplink in a wireless frame of the system and the system frame number; a second processing module, which is used to determine the second reference variable according to the number of transition points from downlink to uplink in a wireless frame and the time slot number; a third processing module, which is used to determine the third reference variable according to the sub-frame offset of the signal; a control module, which is used to determine transmission times of the signal according to the first reference variable determined by the first processing module, the second reference variable determined by the second processing module and the third reference variable determined by the third processing module.
Preferably, the above-mentioned control module may be an adder.
In virtue of at least one of the above-mentioned technical solutions of the present invention, by calculating the corresponding reference variables according to the related parameters and treating the sum of the reference variables as the transmission times, the continuous SRS transmission times can be calculated, and the aim that the UEs with the same SRS period have the same SRS transmission times at the same time can be achieved, thereby the perfect frequency hopping performance can be obtained.
The drawings are intended to provide further understanding on the present invention and constitute a part of the Description, and are intended to explain the present invention in connection with the embodiments of the present invention but not to limit the present invention. Among the drawings:
Function Overview
In the technical solutions provided by the embodiments of the present invention, by calculating the corresponding reference variables (the first reference variable, the second reference variable and the third reference variable) according to the related parameters (the number of transition points from downlink to uplink in a wireless frame, the system frame number, the time slot number, the sub-frame offset of the signal and the maximum sub-frame offset of the signal) and treating the sum of the corresponding reference variables as transmission times of the signal, the continuous SRS transmission times can be calculated.
The present invention is described in detail below in connection with drawings. If there is no conflict, the embodiments and the characteristics in the embodiments of the present invention may be combined with each other.
Method Embodiments
According to the embodiment of the present invention, a method for controlling signal transmission is provided.
step S502: determining the first reference variable according to the number of transition points from downlink to uplink in a wireless frame of the system and the system frame number;
step S504: determining the second reference variable according to the number of transition points from downlink to uplink in a wireless frame and the time slot number;
step S506: determining the third reference variable according to the sub-frame offset of the signal; and
step S508: determining signal transmission times according to the first reference variable, the second reference variable and the third reference variable, so as to control the signal transmission.
The details of the above-mentioned processing procedure are described below.
In order to make the UEs with the same SRS period have the same SRS transmission times at the same time and the transmission times is increasing continuously for the UE, then the first reference variable, the second reference variable and the third reference variable are determined firstly, namely steps S502 to S506 are executed; and then the transmission times of signals are determined according to the determined reference variables, namely step S508 is executed; wherein one SRS period corresponds to one or a plurality of sub-frame offsets.
In the specific implementation process, the processing procedure of calculating the corresponding reference variables according to the related parameters is: step S502, determining the first reference variable, the first reference variable n1 may be determined according to the number of transition points from downlink to uplink in a wireless frame of the system (namely NSP) and the system frame number (namely nf), namely calculating the value of n1=2NSPnf; step S504, determining the second reference variable, the second reference variable n2 may be determined according to the number of transition points from downlink to uplink in a wireless frame (namely NSP) and the time slot number (namely ns), namely calculating the value of
step S506, determining the third reference variable, the third reference variable n3 may be determined according to the sub-frame offset of the signal (namely Toffset, Toffset
After the reference variables are determined, the transmission times of the signal nSRS may be determined, namely the sum of the first reference variable, the second reference variable and the third reference variable is treated as the transmission times of the signal nSRS,
wherein n1=2NSPnf is the first reference variable,
is the second reference variable,
is the third reference variable, NSP is the number of transition points from downlink to uplink in a wireless frame, nf is the system frame number, ns is the time slot number, Toffset is the sub-frame offset of the signal, Toffset
In the above-mentioned embodiment, in virtue of the method for calculating signal transmission times provided by the embodiment of the present invention, continuous SRS transmission times can be calculated, so as to make the UEs with the same SRS period have the same SRS transmission times at the same time, thereby the perfect frequency hopping performance can be obtained.
The present invention is described in details in connection with the preferred embodiments below.
Embodiment 1
Firstly, the values of the parameters are determined: the specific SRS period of the selected UE and the period to which the sub-frame offset configuration corresponds are 2 ms and sub-frame offset is {0, 1}, then Toffset
Then, if the values of the above-mentioned parameters are put into formula
then:
(I) In the sub-frame with nf=2, the times of the SRS transmitted by this UE are 8, 9, and 11, namely:
under the circumstance of NSP=2, nf=2, ns=3, Toffset=0 and Toffset
(II) In the sub-frame with nf=3, the times of the SRS transmitted by this UE are 12, 13, 14 and 15, namely:
Under the circumstance of NSP=2, nf=3, ns=3, Toffset=0 and Toffset
From the above-mentioned calculation results, it may be seen that SRS transmission times increase continuously.
Embodiment 2
Firstly, the values of the parameters are determined: the specific SRS period of the selected UE and the period to which sub-frame offset configuration corresponds are 2 ms and sub-frame offset is {1, 4}, then Toffset
Then, if the values of the above-mentioned parameters are put into formula
then:
(I) In the sub-frame with n=2, the times of the SRS transmitted by this UE are 8, 9, and 11, namely:
Under the circumstance of NSP=2, nf=2, ns=3, Toffset=1 and Toffset
(II) In the sub-frame with nf=3, the times of the SRS transmitted by this UE are 12, 13, 14 and 15, namely:
Under the circumstance of NSP=2, nf=3, ns=3, Toffset=1 and Toffset
From the above-mentioned calculation results, it may be seen that SRS transmission times increase continuously.
Device Embodiment
According to the embodiments of the present invention, a device for controlling signal transmission is provided.
The functions of the above-mentioned modules are described in details below.
the inputting module 60, used to input the number (NSP) of transition points from downlink to uplink in a wireless frame of the system, the system frame number (nf), the time slot number (ns) and the sub-frame offset (Toffset) of the signal;
the first processing module 62, connected to the inputting module 60, and is used to determine the first reference variable n1 according to the number (NSP) of transition points from downlink to uplink in a wireless frame of the system and the system frame number (nf);
the second processing module 64, connected to the inputting module 60, and is used to determine the second reference variable n2 according to the number (NSP) of transition points from downlink to uplink in a wireless frame and the time slot number (ns);
the third processing module 66, connected to the inputting module 60, and is used to determine the third reference variable n3 according to the sub-frame offset (Toffset) of the signal;
the control module 68, connected to the first processing module 62, the second processing module 64 and the third processing module 66, and the control module 68 is used to determine transmission times (nSRS) of the signal according to the first reference variable (n1) determined by the first processing module, the second reference variable (n2) determined by the second processing module and the third reference variable (n3) determined by the third processing module. In the specific implementation process, preferably, the control module 68 may be an adder.
The continuous SRS transmission times can be calculated through the device for controlling signal transmission provided by the embodiments of the present invention, so as to make the UEs with the same SRS period have the same SRS transmission times at the same time, thereby the perfect frequency hopping performance can be obtained.
To summarize, in virtue of the method and/or device for controlling signal transmission provided by the present invention, by calculating the corresponding reference variables (the first reference variable, the second reference variable and the third reference variable) according to the related parameters (the number of transition points from downlink to uplink in a wireless frame, the system frame number, the time slot number, the sub-frame offset of the signal and the maximum sub-frame offset of the signal) and treating the sum of these reference variables as the transmission times, the continuous SRS transmission times can be calculated, and the aim can be achieved that the UEs with the same SRS period have the same SRS transmission times at the same time and the transmission times increase continuously for the UE, thereby the perfect frequency hopping performance can be obtained.
According to the embodiments of the present invention, a computer readable medium is provided as well. The computer readable medium carries program code. When the program code being executed, processor may be triggered to execute the method for controlling signal transmission according to the embodiment of the present invention, which is as above-mentioned specifically. The processor may be installed in computer or network system. The present invention is not limited to any software and/or hardware combination which is used to realize the above-mentioned readable medium or processor.
The above are preferred embodiments of the present invention and are not intended to limit the present invention. For those skilled in the art, the present invention may have various changes and modifications. Any modification, identical replacement and improvement made without departing from the spirit and principle of the present invention shall be within the protection scope of the present invention.
Yu, Bin, Dai, Bo, Hao, Peng, Liang, Chunli
Patent | Priority | Assignee | Title |
10182405, | Apr 30 2010 | SUN PATENT TRUST | Wireless communication device and method for controlling transmission power |
10506525, | Apr 30 2010 | SUN PATENT TRUST | Wireless communication device and method for controlling transmission power |
10873913, | Apr 30 2010 | SUN PATENT TRUST | Wireless communication device and method for controlling transmission power |
11356958, | Apr 30 2010 | SUN PATENT TRUST | Wireless communication device and method for controlling transmission power |
11751143, | Apr 30 2010 | SUN PATENT TRUST | Wireless communication device and method for controlling transmission power |
9055535, | Apr 30 2010 | SUN PATENT TRUST | Wireless communication device and method for controlling transmission power |
9532315, | Apr 30 2010 | SUN PATENT TRUST | Wireless communication device and method for controlling transmission power |
ER6135, |
Patent | Priority | Assignee | Title |
20080045259, | |||
20080045260, | |||
CN101197615, | |||
CN101242239, | |||
RU2005129097, | |||
WO2004075595, | |||
WO2010019012, | |||
WO2010019012, |
Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
May 15 2009 | ZTE Corporation | (assignment on the face of the patent) | / | |||
Oct 20 2010 | HAO, PENG | ZTE Corporation | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 025177 | /0484 | |
Oct 20 2010 | LIANG, CHUNLI | ZTE Corporation | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 025177 | /0484 | |
Oct 20 2010 | DAI, BO | ZTE Corporation | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 025177 | /0484 | |
Oct 20 2010 | YU, BIN | ZTE Corporation | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 025177 | /0484 | |
Jul 12 2024 | ZTE Corporation | GUANGDONG OPPO MOBILE TELECOMMUNICATIONS CORP , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 068142 | /0957 |
Date | Maintenance Fee Events |
Nov 23 2016 | M1551: Payment of Maintenance Fee, 4th Year, Large Entity. |
Oct 02 2020 | M1552: Payment of Maintenance Fee, 8th Year, Large Entity. |
Date | Maintenance Schedule |
Jun 11 2016 | 4 years fee payment window open |
Dec 11 2016 | 6 months grace period start (w surcharge) |
Jun 11 2017 | patent expiry (for year 4) |
Jun 11 2019 | 2 years to revive unintentionally abandoned end. (for year 4) |
Jun 11 2020 | 8 years fee payment window open |
Dec 11 2020 | 6 months grace period start (w surcharge) |
Jun 11 2021 | patent expiry (for year 8) |
Jun 11 2023 | 2 years to revive unintentionally abandoned end. (for year 8) |
Jun 11 2024 | 12 years fee payment window open |
Dec 11 2024 | 6 months grace period start (w surcharge) |
Jun 11 2025 | patent expiry (for year 12) |
Jun 11 2027 | 2 years to revive unintentionally abandoned end. (for year 12) |